Method and apparatus for adaptive gain control and antenna load compensation
US-9667282-B1 · May 30, 2017 · US
US2016105299A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016105299-A1 |
| Application number | US-201514972038-A |
| Country | US |
| Kind code | A1 |
| Filing date | Dec 16, 2015 |
| Priority date | Jul 6, 2015 |
| Publication date | Apr 14, 2016 |
| Grant date | — |
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Examples of front-end modules, apparatuses and methods for coupling compensation in a closed-loop digital pre-distortion (DPD) system are described. The closed-loop DPD circuit may include a PA and a loopback path. The PA may receive a PA input signal and amplify the PA input signal to provide a PA output signal proportional to a product of the PA input signal and a gain of the PA. The loopback path may receive the PA output signal to output a loopback signal. A forward coupling and a backward coupling may exist between the PA input signal and an output of the loopback path. The output of the loopback path may be proportional to a product of the PA output signal and a gain of the loopback path. The loopback path may include a coupling cancellation mechanism configured to cancel couplings between the PA input signal and the loopback signal.
Opening claim text (preview).
What is claimed is: 1 . A closed-loop digital pre-distortion (DPD) circuit, comprising: a loopback path coupled to receive a PA output signal to output a loopback signal, wherein the PA output signal is provided by a power amplifier (PA) receiving and amplifying a PA input signal, wherein a forward coupling and a backward coupling exist between the PA input signal and an output of the loopback path, and wherein the loopback path comprises a coupling cancellation mechanism configured to cancel at least a portion of couplings between the PA input signal and the loopback signal. 2 . The closed-loop DPD circuit of claim 1 , wherein the coupling cancellation mechanism comprises: an attenuator configured to receive and attenuate the PA output signal to output an attenuated signal; and a phase alternator configured to receive the attenuated signal and shift a phase of the attenuated signal to output a first loopback signal and a second loopback signal with a non-zero phase shift from the first loopback signal such that a difference between the first loopback signal and the second loopback signal is at least approximately linearly proportional to a product of a gain of the PA and a gain of the loopback path. 3 . The closed-loop DPD circuit of claim 1 , wherein the coupling cancellation mechanism comprises: an attenuator configured to receive and attenuate the PA output signal to output an attenuated signal; and a frequency translator configured to receive the attenuated signal and output a frequency-translated signal having a frequency different from a frequency of the PA input signal. 4 . A closed-loop digital pre-distortion (DPD) circuit, comprising: a loopback path coupled to receive a PA output signal, wherein the PA output signal is provided by a power amplifier (PA) receiving and amplifying a PA input signal, and wherein a forward coupling and a backward coupling exist between the PA input signal and an output of the loopback path; and a phase shifting element configured to shift a phase of either the PA input signal or the PA output signal to cause the loopback path to output a first loopback signal and a second loopback signal with a non-zero phase shift from the first loopback signal such that a difference between the first loopback signal and the second loopback signal is at least approximately linearly proportional to a product of a gain of the PA and a gain of the loopback path. 5 . The closed-loop DPD circuit of claim 4 , wherein the first loopback signal and the second loopback signal differ from each other by a phase shift of 180°. 6 . The closed-loop DPD circuit of claim 4 , wherein the loopback path comprises: a first attenuator configured to receive and attenuate the PA output signal to output a first attenuated signal; a phase alternator functioning as the phase shifting element and coupled to receive the first attenuated signal, the phase alternator configured to shift a phase of the first attenuated signal to output a phase alternator output signal; a second attenuator configured to receive and attenuate the phase alternator output signal to output a second attenuated signal; and a down converter configured to receive and down convert the second attenuated signal from a first frequency to a second frequency lower than the first frequency. 7 . The closed-loop DPD circuit of claim 4 , further comprising: a DPD calibration engine configured to output a pre-distorted signal; a digital-to-analog converter (DAC) coupled to receive the pre-distorted signal and configured to convert the pre-distorted signal to output an analog signal; a transmitter coupled to receive the analog signal and configured to output the PA input signal based on the analog signal; an analog-to-digital converter (ADC) coupled to receive an output of the loopback path and configured to convert the output of the loopback path to a digital signal, wherein the DPD calibration engine is coupled to receive the digital signal and configured to generate the pre-distorted signal based at least in part on the digital signal. 8 . The closed-loop DPD circuit of claim 7 , further comprising: a coupling compensation filter coupled between the DPD calibration engine and the loopback path and configured to filter an output of the loopback path, the coupling compensation filter having a filtering coefficient that is set based on a coupling effect caused by the forward coupling and the backward coupling. 9 . A method implementable in a closed-loop digital pre-distortion (DPD) circuit, comprising: phase shifting a phase of either a power amplifier (PA) input signal received by a PA of the closed-loop DPD circuit or a PA output signal outputted by the PA to cause a loopback path of the closed-loop DPD circuit to output a first loopback signal and a second loopback signal with a non-zero phase shift from the first loopback signal; and processing the first loopback signal and the second loopback signal to replicate the PA output signal, wherein the PA is configured to receive the PA input signal and amplify the PA input signal to provide the PA output signal, wherein the loopback path is coupled to receive the PA output signal to provide an output, and wherein a forward coupling and a backward coupling exist between the PA input signal and the output of the loopback path. 10 . The method of claim 9 , wherein the first loopback signal and the second loopback signal differ from each other by a phase shift of 180°. 11 . The method of claim 9 , further comprising: processing the first loopback signal and the second loopback signal to determine a coupling effect caused by the forward coupling and the backward coupling. 12 . The method of claim 11 , further comprising: calibrating a DPD calibration engine of the closed-loop DPD circuit using a signal derived from the PA output signal based at least in part on the coupling effect in a real-time manner or in an adaptive manner. 13 . The method of claim 12 , wherein the calibrating in the real-time manner comprises keeping the loopback path enabled to perform DPD calibration. 14 . The method of claim 12 , wherein the calibrating in the adaptive manner comprises enabling the loopback path as needed to perform DPD calibration. 15 . The method of claim 11 , further comprising: filtering an output of the loopback path with a coupling compensation filter having a filtering coefficient that is set based on the coupling effect; and performing DPD processing using the filtered signal. 16 . An apparatus, comprising: a front-end module (FEM) coupled between an antenna and a transceiver, the FEM comprising: a first combining element coupled to the antenna to transmit and receive signals through the antenna; a power amplifier (PA) configured to receive an outgoing signal from the transceiver as a PA input signal and amplify the PA input signal to provide a PA output signal to the antenna through the first combining element; and a low-noise amplifier (LNA) configured to receive a pre-amplified incoming signal from the antenna through the first combining element, the LNA further configured to amplify the pre-amplified incoming signal to provide an incoming signal to the transceiver; and a loopback circuit configured to sense the PA output signal and generate a loopback signal corresponding to characteristics of the PA output signal, wherein the loopback signal is received by the transceiver. 17 . The apparatus of claim 16 , wherein the loopback circuit is configured to perform one or more operations comprising RF se
with semiconductor devices only {(H03F3/245 takes precedence)} · CPC title
the amplifier being a radio frequency amplifier · CPC title
the amplifier being a low noise amplifier [LNA] · CPC title
in transistor amplifiers · CPC title
with semiconductor devices only · CPC title
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